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Planning for robust reserve networks using uncertainty analysis

机译:使用不确定性分析规划强大的储备网络

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摘要

Planning land-use for biodiversity conservation frequently involves computer-assisted reserve selection algorithms. Typically such algorithms operate on matrices of species presence–absence in sites, or on species-specific distributions of model predicted probabilities of occurrence in grid cells. There are practically always errors in input data—erroneous species presence–absence data, structural and parametric uncertainty in predictive habitat models, and lack of correspondence between temporal presence and long-run persistence. Despite these uncertainties, typical reserve selection methods proceed as if there is no uncertainty in the data or models. Having two conservation options of apparently equal biological value, one would prefer the option whose value is relatively insensitive to errors in planning inputs. In this work we show how uncertainty analysis for reserve planning can be implemented within a framework of information-gap decision theory, generating reserve designs that are robust to uncertainty. Consideration of uncertainty involves modifications to the typical objective functions used in reserve selection. Search for robust-optimal reserve structures can still be implemented via typical reserve selection optimization techniques, including stepwise heuristics, integer-programming and stochastic global search.
机译:规划土地用途以保护生物多样性通常涉及计算机辅助的保护区选择算法。通常,此类算法适用于物种存在的矩阵(站点中不存在)或模型预测的网格单元中出现概率的物种特定分布。在输入数据中实际上总是存在错误-错误的物种存在-缺少数据,预测性栖息地模型中的结构和参数不确定性以及时间存在与长期持久性之间缺乏对应关系。尽管存在这些不确定性,但典型的储量选择方法仍在进行,就好像数据或模型中没有不确定性一样。有两种生物价值看似相等的保护方案,其中一种方案的价值相对于计划输入中的错误相对不敏感。在这项工作中,我们展示了如何在信息空白决策理论的框架内实施针对储备计划的不确定性分析,从而生成对不确定性具有鲁棒性的储备设计。对不确定性的考虑涉及对储量选择中使用的典型目标函数的修改。仍然可以通过典型的储层选择优化技术来实现对鲁棒最优储层结构的搜索,包括逐步启发法,整数编程和随机全局搜索。

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